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Crook, Elizabeth Derse; Cooper, H; Potts, Donald C; Lambert, T; Paytan, Adina (2013): Impacts of food availability and pCO2 on planulation, juvenile survival, and calcification of the azooxanthellate scleractinian coral Balanophyllia elegans [dataset]. PANGAEA, https://doi.org/10.1594/PANGAEA.834142, Supplement to: Crook, ED et al. (2013): Impacts of food availability and pCO2 on planulation, juvenile survival, and calcification of the azooxanthellate scleractinian coral Balanophyllia elegans. Biogeosciences, 10(11), 7599-7608, https://doi.org/10.5194/bg-10-7599-2013

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Abstract:
Ocean acidification, the assimilation of atmospheric CO2 by the oceans that decreases the pH and CaCO3 saturation state (Omega) of seawater, is projected to have severe adverse consequences for calcifying organisms. While strong evidence suggests calcification by tropical reef-building corals containing algal symbionts (zooxanthellae) will decline over the next century, likely responses of azooxanthellate corals to ocean acidification are less well understood. Because azooxanthellate corals do not obtain photosynthetic energy from symbionts, they provide a system for studying the direct effects of acidification on energy available for calcification. The solitary azooxanthellate orange cup coral Balanophyllia elegans often lives in low-pH, upwelled waters along the California coast. In an 8-month factorial experiment, we measured the effects of three pCO2 treatments (410, 770, and 1220 µatm) and two feeding frequencies (3-day and 21-day intervals) on "planulation" (larval release) by adult B. elegans, and on the survival, skeletal growth, and calcification of newly settled juveniles. Planulation rates were affected by food level but not pCO2. Juvenile mortality was highest under high pCO2 (1220 µatm) and low food (21-day intervals). Feeding rate had a greater impact on calcification of B. elegans than pCO2. While net calcification was positive even at 1220 µatm (~3 times current atmospheric pCO2), overall calcification declined by ~25-45%, and skeletal density declined by ~35-45% as pCO2 increased from 410 to 1220 µatm. Aragonite crystal morphology changed at high pCO2, becoming significantly shorter but not wider at 1220 µatm. We conclude that food abundance is critical for azooxanthellate coral calcification, and that B. elegans may be partially protected from adverse consequences of ocean acidification in habitats with abundant heterotrophic food.
Keyword(s):
Animalia; Balanophyllia elegans; Benthic animals; Benthos; Bottles or small containers/Aquaria (<20 L); Calcification/Dissolution; Cnidaria; Growth/Morphology; Laboratory experiment; Laboratory strains; Mortality/Survival; North Pacific; Other; Reproduction; Single species
Further details:
Lavigne, Héloïse; Epitalon, Jean-Marie; Gattuso, Jean-Pierre (2014): seacarb: seawater carbonate chemistry with R. R package version 3.0. https://cran.r-project.org/package=seacarb
Comment:
In order to allow full comparability with other ocean acidification data sets, the R package seacarb (Lavigne et al, 2014) was used to compute a complete and consistent set of carbonate system variables, as described by Nisumaa et al. (2010). In this dataset the original values were archived in addition with the recalculated parameters (see related PI). The date of carbonate chemistry calculation is 2014-07-21.
Parameter(s):
#NameShort NameUnitPrincipal InvestigatorMethod/DeviceComment
1SpeciesSpeciesCrook, Elizabeth Derse
2TableTabCrook, Elizabeth Derse
3Partial pressure of carbon dioxide (water) at sea surface temperature (wet air)pCO2water_SST_wetµatmCrook, Elizabeth Dersetreatment
4TreatmentTreatCrook, Elizabeth Derse
5LarvaeLarvae#Crook, Elizabeth Dersetotal numbers of planula larvae released over 3 months by 10 adults
6ProportionPropCrook, Elizabeth Dersejuvenile corals dying over 8 months in each treatment
7IndividualsInd#Crook, Elizabeth Derseinitial numbers of juveniles
8VolumeVolcm3Crook, Elizabeth Dersemean
9Volume, standard errorVol std e±Crook, Elizabeth Derse
10MassMassmgCrook, Elizabeth Dersemean
11Mass, standard errorMass std e±Crook, Elizabeth Derse
12DensityDensityg/cm3Crook, Elizabeth Dersemean
13Density, standard errorDensity std e±Crook, Elizabeth Derse
14LengthlµmCrook, Elizabeth Dersemean
15Length, standard errorl std e±Crook, Elizabeth Derse
16WidthwµmCrook, Elizabeth Dersemean
17Width, standard errorw std e±Crook, Elizabeth Derse
18IdentificationIDCrook, Elizabeth Derse
19LengthlµmCrook, Elizabeth Derse
20WidthwµmCrook, Elizabeth Derse
21MassMassgCrook, Elizabeth Derse
22VolumeVolcm3Crook, Elizabeth Derse
23Alkalinity, totalATµmol/kgCrook, Elizabeth DersePotentiometric titration
24Alkalinity, total, standard deviationAT std dev±Crook, Elizabeth DersePotentiometric titration
25Carbon, inorganic, dissolvedDICµmol/kgCrook, Elizabeth DerseCoulometric titration
26Carbon, inorganic, dissolved, standard deviationDIC std dev±Crook, Elizabeth DerseCoulometric titration
27Partial pressure of carbon dioxide (water) at sea surface temperature (wet air)pCO2water_SST_wetµatmCrook, Elizabeth DerseCalculated using CO2SYS
28Partial pressure of carbon dioxide, standard deviationpCO2 std dev±Crook, Elizabeth DerseCalculated using CO2SYS
29pHpHCrook, Elizabeth DerseCalculated using CO2SYStotal scale
30pH, standard deviationpH std dev±Crook, Elizabeth DerseCalculated using CO2SYStotal scale
31Aragonite saturation stateOmega ArgCrook, Elizabeth DerseCalculated using CO2SYS
32Aragonite saturation state, standard deviationOmega Arg std dev±Crook, Elizabeth DerseCalculated using CO2SYS
33Temperature, waterTemp°CCrook, Elizabeth Derse
34Temperature, water, standard deviationTemp std dev±Crook, Elizabeth Derse
35SalinitySalCrook, Elizabeth Derse
36Salinity, standard deviationSal std dev±Crook, Elizabeth Derse
37SilicateSILCATµmol/kgCrook, Elizabeth Derse
38Silicate, standard deviationSi(OH)4 std dev±Crook, Elizabeth Derse
39PhosphatePHSPHTµmol/kgCrook, Elizabeth Derse
40Phosphate, standard deviation[PO4]3- std dev±Crook, Elizabeth Derse
41Nitrate[NO3]-mmol/kgCrook, Elizabeth Derse
42Nitrate, standard deviationNO3 std dev±Crook, Elizabeth Derse
43Carbonate system computation flagCSC flagYang, YanCalculated using seacarb after Nisumaa et al. (2010)
44pHpHYang, YanCalculated using seacarb after Nisumaa et al. (2010)total scale
45Carbon dioxideCO2µmol/kgYang, YanCalculated using seacarb after Nisumaa et al. (2010)
46Partial pressure of carbon dioxide (water) at sea surface temperature (wet air)pCO2water_SST_wetµatmYang, YanCalculated using seacarb after Nisumaa et al. (2010)
47Fugacity of carbon dioxide (water) at sea surface temperature (wet air)fCO2water_SST_wetµatmYang, YanCalculated using seacarb after Nisumaa et al. (2010)
48Bicarbonate ion[HCO3]-µmol/kgYang, YanCalculated using seacarb after Nisumaa et al. (2010)
49Carbonate ion[CO3]2-µmol/kgYang, YanCalculated using seacarb after Nisumaa et al. (2010)
50Aragonite saturation stateOmega ArgYang, YanCalculated using seacarb after Nisumaa et al. (2010)
51Calcite saturation stateOmega CalYang, YanCalculated using seacarb after Nisumaa et al. (2010)
Status:
Curation Level: Enhanced curation (CurationLevelC)
Size:
20615 data points

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